Colorless glasses/borosilicate glasses with special UV-edge

ABSTRACT

A borosilicate glass, having a spectral edge situation in a UV range of 280 to 325 nm, which can be set in a simple and defined manner, with the composition in percent by weight on an oxide basis of 60-75% SiO 2 , 10-15% B 2 O 3 , 5-15% Na 2 O, 5-10% K 2 O, 0-5% Li 2 O, 0.1-1 CaO, 0.5-3% BaO, &gt;0-1.7% TiO 2 , 0-0.5% Sb 2 O 3 , and normal refining agents.

BACKGROUND OF THE INVENTION

[0001] 1. Field of the Invention

[0002] This invention relates to a borosilicate glass with a special edge situation and to uses for the borosilicate glass.

[0003] 2. Discussion of Related Art

[0004] In order to filter, in a targeted manner, a UV range which generally is defined as below 400 nm and can be divided into three sub-ranges, UVA, UVB and UVC, so-called colorless glasses or also optical glasses with defined edge situations are used. The edge situation or edge wavelength λ_(c) corresponds to half of the pure transmission maximum value between the blocking and permeable range.

[0005] A spectacle glass is known from European Patent Reference EP 0 151 346 B1 which has a UV edge in the range between 325 nm and 335 nm. TiO₂ is added to the glass for this purpose. The proportion of TiO₂ is thus 4-6% by weight on an oxide basis.

[0006] This type of glass is not suitable for commercial application cases, in which a dimensional stability even at high transformation temperatures, for example <560° C., and/or a stable expansion coefficient is required.

[0007] A stable expansion coefficient facilitates the incorporation or respectively exchange of the glasses in components.

[0008] One important aspect for the glasses in such technical applications is also their transmission course inclusive of UV edge. A defined steep UV edge is required in the UV range corresponding to the application purpose. For example, for illumination tables for burning-in phosphorus units into television screen units, UV radiation>320 nm is required. For experiments with plants in plant cultivation, hard UV radiation>280 nm is also definitely used. Weathering instruments for quality control change the UV ranges and thus filters according to each requirement.

[0009] Japanese Patent Reference JP 77 066 512 A describes UV filter glass with edge situations of approximately 370 nm made of a borosilicate glass which necessarily contains CeO₂ and otherwise in combination with TiO₂. The CeO₂ significantly increases the material costs in the glass. In addition, CeO₂ has a negative effect on the solarization of the glass.

[0010] German Patent Reference DE 639 456 A1 describes a lamp glass, made of a glass with a relatively wide composition range, in which SiO₂, B₂O₃ are components and Al₂O₃, MgO, CaO, BaO, BeO, Na₂O and K₂O can be contained. The glass has no defined UV edge or optical situations.

[0011] United Kingdom Patent Reference GB 20 02 341 describes an optical fibre glass with a relatively wide composition range, in which SiO₂, B₂O₃ are components and Al₂O₃, MgO, CaO, BaO, SrO, Na₂O and K₂O can be contained. The glass has no defined UV edge, but rather glasses/fibres with refraction index gradients.

[0012] U.S. Pat. No. 2,832,491 corresponds to a method patent, which is suitable for pre-loading of glass panes. The composition of the glass which is suitable for pre-loading contains in turn SiO₂ and B₂O₃ as components in a relatively wide range. Exact UV edges and optical situations cannot be set with this glass.

[0013] German Patent Reference DE 195 32 800 A1 comprises the use of glasses for disinfection. A high transmission in the UVB and UVC range with reduced transmission in the visible and IR range is ensured by these glasses. Consequently, glasses with high transmission in the pass range are not possible.

[0014] German Patent Reference DE 38 22 733 A1 describes solder glass made of a glass with a relatively wide composition range, in which SiO₂, B₂O₃ are components and Al₂O₃, MgO, CaO, BaO, SrO, ZnO, Li₂O, Na₂O and K₂O can be contained, containing at most 1% by weight alkali earth metal oxides. An alkali earth content of at least 1% by weight ensures a good chemical resistance, which permits the application of these filter glasses in a humid climate. The glass taught by German Patent Reference DE 38 22 733 A1 does not make it possible to set a defined UV edge situation.

[0015] European Patent Reference EP 0 505 061 A1 describes glass for protection covers for gallium arsenide solar cells with high UV absorption in the wavelength range of less than 320 nm. It contains SiO₂, B₂O₃, Na₂O, K₂O and CeO₂ as components. Al₂O₃, TiO₂, MgO, CaO, ZnO, SrO, BaO, PbO, Li₂O, As₂O₃, Sb₂O₃ and F are contained, optionally. High UV transmissions are specifically avoided in the case of the described glasses.

[0016] European Patent Reference EP 0 953 549 A1 describes glass for glass plates and substrates, which are used in electronics. The physical properties, such as expansion coefficient, the lower strain point, the density and the oxygen atom density are essential here. However, the UV edge situation or the optical properties are not relevant for these glasses.

SUMMARY OF THE INVENTION

[0017] It is one object of this invention to provide a UV permeable glass, the edge situation of which can be set in a defined and simple manner in a range between 280 and 325 nm, the glass being dimensionally stable at high operating temperatures and having a relatively constant expansion coefficient.

[0018] This object can be achieved by a glass according to features described in this specification and in the claims.

[0019] The borosilicate glass which is used fulfills the requirements in temperature and dimensional stability. The borosilicate glass can thereby be made available with a defined edge situation between 280 and 325 nm, with high transmission in the pass range, high optical density in the stop range and specific refraction indices and Abbé numbers. This is possible merely by varying the content of TiO₂ in the glass system.

[0020] The continuous production with edge situations λ_(c) of 280 to 325 nm is essential for these glasses. This continuous production is ensured because of the uniform base glass. TiO₂ is used as doping for the desired steep edge situation, an addition not required in the case of very low edge situations <290 nm. This type of production saves costs and time, for example it avoids long remelting phases, in which no usable glass is produced.

[0021] All the glasses described here, apart from being used as colorless glass with specific edge situations, are used also as optical glasses with defined refraction indices n_(d) and dispersion v_(d). As a result, uses in the field of imaging optics, projection, telecommunications, optical communications technology and microlithography are possible.

[0022] A glass with the desired optical and physical properties comprises preferably a basic glass system of 60 to 70% by weight SiO_(2,) 10 to 15% by weight B₂O_(3,) 5 to 15% by weight Na₂O, 5 to 10% by weight K₂O, 0.1 to 1% by weight CaO, 0.5 to 3 BaO and optionally 0 to 5% by weight Li₂O (preferably Li free), 0 to 2 TiO_(2,) 0 to 0.5% by weight Sb₂O₃ and normal refining agents.

[0023] The glass according to this invention contains SiO₂ in the % by weight range between 60 to 75%, preferably 65 to 75% by weight and functions as glass former. Higher contents would impair the meltability, in the case of lower contents, would make the glass formation difficult. Lower SiO₂ proportions in the glass would also result in Abbé numbers which are too low.

[0024] B₂O₃ is a glass former exactly like SiO₂ and improves the meltability by reducing the viscosity. In the glass according to this invention, 5 to 15% by weight B₂O₃, preferably 10 to 13% by weight, are contained. Lower contents than 5% by weight B₂O₃ would impair the meltability of the glasses, whereas higher contents than 15% by weight B₂O₃ impair the chemical resistance of the glass.

[0025] The contained alkali oxides Na₂O (5 to 15% by weight, preferably 6 to 12% by weight) and K₂O (5 to 10% by weight) can improve the meltability, for example to reduce the viscosity. With alkali contents which are too high, above all the hydrolytic resistance would be impaired, but also to a lesser extent the resistance to alkali liquor. Above all, however, the Abbé number is reduced too greatly.

[0026] Of the alkali earth oxides, CaO with 0.1 to 1% by weight, preferably 0.1 to 0.5% by weight and BaO with 0.5 to 3% by weight, preferably 0.5 to 2.5% by weight, are contained in the glass according to this invention. The alkali earth oxides reduce the melt viscosity, repress the crystallisation and contribute to improving the resistance to alkali. CaO is thus present in the glass at least with 0.1% by weight and BaO with at least 0.5% by weight. Both oxides are likewise indispensable for the setting of the optical situation. With higher contents, the Abbé number in turn may be reduced too greatly.

[0027] TiO₂ is required as an optional component for setting the UV situations greater than 280 nm. However more than 1.7% by weight of TiO₂ in the glass scarcely still effects a noticeable displacement of the UV edge in the longer-wave range in this glass system and promotes devitrification. In addition, too high contents of TiO₂, as indicated, would increase the refractive index too greatly and reduce the Abbé number too greatly.

[0028] The glass can be manufactured free of expensive CeO₂ apart from unavoidable impurities. This is advantageous for the steepness of the transmission curve during the transition from the stop to the pass range and for the solarisation resistance.

[0029] The glass can also be free of PbO and of As₂O₃ apart from unavoidable impurities. The glass can thus be free of toxic components and therefore can be ecologically harmless.

[0030] Sb₂O₃ is optionally a component and serves for use as refining agent. However, other normal refining agents are likewise possible.

BRIEF DESCRIPTION OF THE DRAWING

[0031]FIG. 1 shows a graphical representation of an edge situation for a given glass composition.

DESCRIPTION OF PREFERRED EMBODIMENTS

[0032] Normal optical raw materials are used for producing the exemplary embodiments of glasses.

[0033] The well homogenized glass batch was melted, refined and homogenized in the laboratory in a Pt crucible at 1420° C. Subsequently the glass was cast and cooled at 20 K/h. TABLE 1 shows a melt example of a 0.51 melt: Oxides % by weight Raw material Initial weight (g) SiO₂ 69.98 SiO₂ 772.65 B₂O₃ 11.19 H₃BO₃ 219.5 Na₂O 9.49 NaNO₃ 287.79 K₂O 7.29 3.8 K₂CO₃ 61.69 3.49 KNO₃ 82.78 CaO 0.2 CaCO₃ 3.94 BaO 1.35 Ba(NO₃)₂ 25.38 TiO₂ 0.20 TiO₂ 2.22 Sb₂O₃ 0.30 Sb₂O₃ 3.31

[0034] The properties of the thus obtained glass are indicated in Table 2, Example 3. TABLE 2 shows 9 examples of glasses according to the invention (1 to 9) with their compositions (in % by weight on an oxide basis) and their essential properties: Example No. Oxides 1 2 3 4 5 6 7 8 9 B₂O₃ 11.21 11.20 11.19 11.18 11.17 11.15 11.12 11.10 11.07 BaO 1.35 1.35 1.35 1.35 1.35 1.34 1.34 1.34 1.34 CaO 0.20 0.20 0.2 0.20 0.20 0.20 0.20 0.20 0.20 K₂O 7.31 7.30 7.29 7.28 7.28 7.26 7.25 7.23 7.21 Na₂O 9.51 9.50 9.49 9.48 9.47 9.45 9.43 9.41 9.39 Sb₂O₃ 0.28 0.30 0.3 0.30 0.30 0.30 0.30 0.30 0.30 SiO₂ 70.13 70.05 69.98 69.91 69.84 69.70 69.56 69.42 69.21 TiO₂ 0.01 0.10 0.20 0.30 0.40 0.60 0.80 1.00 1.30 Properties λ_(c)(d = 2 mm) [nm] 283 295 302 304 308 312 315 318 320 n_(d)(20 K/h) 1.51423 1.51474 1.51527 1.51566 1.51633 1.51718 1.51805 1.51986 1.52056 V_(d) (20 K/h) 64.32 64.15 63.90 63.69 63.48 63.01 62.60 62.03 61.58 α_((20/300° C.)) [10⁻⁶/K] 8.2 8.2 8.1 8.2 8.2 8.1 8.1 8.1 8.1 Tg[° C.] 571 573 570 572 575 568 567 578 578

[0035] The edge situation, dependent upon the TiO₂ content, for a given glass composition is plotted in FIG. 1. As shown, the edge situation can be set in a targeted and reproducible manner as a result of the dosed addition of TiO₂.

[0036] German Patent Reference 102 45 880.4-45, the priority document corresponding to this invention, and its teachings are incorporated, by reference, into this specification. 

What is claimed is:
 1. A borosilicate glass with a composition in a percent by weight on an oxide basis, including: 60-75% SiO₂, 10-15% B₂O₃, 5-15% Na₂O, 5-10% K₂O, 0.1-1% CaO, 0.5-3% BaO, >0-1.7% TiO₂, 0-0.5% Sb₂O₃, and normal refining agents.
 2. A borosilicate glass according to claim 1, wherein the composition in the percent by weight on the oxide basis includes 65-75% SiO₂, 10 -13% B₂O₃, 6-12% Na₂O, 5-10% K₂O, 0.1-0.5% CaO, 0.5-2.5% BaO, 0-1.7% TiO₂, 0-0.5% Sb₂O₃, and normal refining agents.
 3. A borosilicate glass according to claim 2, wherein the composition in a second percent by weight on a second oxide basis further includes 0.5-2.5% SrO, 0.1-1% Mg, and 0-5% Li₂O.
 4. A borosilicate glass according to claim 3, wherein the composition is free of As₂O₃, PbO and CeO₂, apart from unavoidable impurities.
 5. A borosilicate glass according to claim 4 having steep edge situations λ_(c) between 280 nm and 325 nm and a pure transmission degree of τ_(ip) in a pass range of greater than 98% and an optical density in a stop range of 1*10⁻⁵with a sample thickness of 2 mm.
 6. A borosilicate glass according to claim 5, having an edge situation in a range between 280 to 295 nm, and a TiO₂ content of greater than 0 to 0.1% by weight on an oxide basis.
 7. A borosilicate glass according to claim 5, having an edge situation in a range between 290 and 305 nm, and a TiO₂ content of 0.05 to 0.3% by weight on an oxide basis.
 8. A borosilicate glass according to claim 5, having an edge situation in a range between 300 to 315 nm, and a TiO₂ content of 0.16 to 0.8% by weight on an oxide basis.
 9. A borosilicate glass according to claim 5, having an edge situation in a range between 310 to 325 nm, and a TiO₂ content of 0.5 to 1.7% by weight on an oxide basis.
 10. A borosilicate glass according to claim 9, used for producing filter glass for UV cut-off filters in at least one of a UVB range and a UVC range.
 11. A borosilicate glass according to claim 10, used for producing filter glass for one of illumination tables and weathering instruments.
 12. A borosilicate glass according to claim 10, used for producing optical glass for imaging optics, projection, telecommunications, optical telecommunications technology and microlithography.
 13. A borosilicate glass according to claim 12, having a transformation temperature Tg greater than 560° C., with a thermal expansion coefficient α(_(20/300)) between 7.5 and 8.8*10⁻⁶/K, and steep edge situations between 275 nm and 325 nm.
 14. A borosilicate glass according to claim 1, wherein the composition in a second percent by weight on a second oxide basis further includes 0.5-2.5% SrO, 0.1-1% Mg, and 0-5% Li₂O.
 15. A borosilicate glass according to claim 1, wherein the composition is free of As₂O₃, PbO and CeO₂, apart from unavoidable impurities.
 16. A borosilicate glass according to claim 1 having steep edge situations λ_(c) between 280 nm and 325 nm and a pure transmission degree of τ_(ip) in a pass range of greater than 98% and an optical density in a stop range of 1*10⁻⁵ with a sample thickness of 2 mm.
 17. A borosilicate glass according to claim 1, having an edge situation in a range between 280 to 295 nm, and a TiO₂ content of greater than 0 to 0.1% by weight on an oxide basis.
 18. A borosilicate glass according to claim 1, having an edge situation in a range between 290 and 305 nm, and a TiO₂ content of 0.05 to 0.3% by weight on an oxide basis.
 19. A borosilicate glass according to claim 1, having an edge situation in a range between 300 to 315 nm, and a TiO₂ content of 0.16 to 0.8% by weight on an oxide basis.
 20. A borosilicate glass according to claim 1, having an edge situation in a range between 310 to 325 nm, and a TiO₂ content of 0.5 to 1.7% by weight on an oxide basis.
 21. A borosilicate glass according to claim 1, used for producing filter glass for UV cut-off filters in at least one of a UVB range and a UVC range.
 22. A borosilicate glass according to claim 1, used for producing filter glass for one of illumination tables and weathering instruments.
 23. A borosilicate glass according to claim 1, used for producing optical glass for imaging optics, projection, telecommunications, optical telecommunications technology and microlithography.
 24. A borosilicate glass according to claim 1, having a transformation temperature Tg greater than 560° C., with a thermal expansion coefficient α(_(20/300)) between 7.5 and 8.8*10⁻⁶/K, and steep edge situations between 275 nm and 325 nm. 